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二维碳化钛(TiCT )剥离的条件优化

Condition optimization for exfoliation of two dimensional titanium carbide (TiCT ).

作者信息

Rajavel Krishnamoorthy, Ke Tao, Yang Kun, Lin Daohui

机构信息

Department of Environmental Science, Zhejiang University, Hangzhou 310058, People's Republic of China.

出版信息

Nanotechnology. 2018 Mar 2;29(9):095605. doi: 10.1088/1361-6528/aaa687.

Abstract

The new class of 2D MXene material exfoliated from transition metal carbides receives increasing research interest due to its extraordinary properties and high potential in energy and environmental applications. However, the exfoliation of TiCT , a widely studied MXene, from its precursor TiAlC by chemical etching in HF solution remains to be optimized. This study investigated the optimum exfoliation condition through systematic evaluating potential effects of reaction parameters, including the weight ratio of TiAlC in HF solution, etching time, reaction temperature, repeating etching, and sonication, on the yield, purity, and structure of produced TiCT . Results show that a high weight percentage (5 wt%) of TiAlC etching at 50 °C for 36 h produced highly exfoliated MXene material. Etching at lower weight percentages (0.6-2.5 wt%) of TiAlC resulted in observable byproduct (AlF). Degradation of MXene layers with AlF enrichment was observed under prolonged etching or higher temperatures. Room temperature etching failed to exfoliate TiAlC and the repeated etching denatured the MXene material. Introduction of controlled sonication during the etching produced highly exfoliated MXene with minimum etching time, which can be a promising alternative for high quality MXene production.

摘要

从过渡金属碳化物剥离得到的新型二维MXene材料,因其优异的性能以及在能源和环境应用方面的巨大潜力而受到越来越多的研究关注。然而,广泛研究的MXene材料TiCT ,通过在氢氟酸溶液中化学蚀刻从其前驱体TiAlC剥离的过程仍有待优化。本研究通过系统评估反应参数(包括TiAlC在氢氟酸溶液中的重量比、蚀刻时间、反应温度、重复蚀刻和超声处理)对所制备的TiCT 的产率、纯度和结构的潜在影响,来研究最佳剥离条件。结果表明,在50℃下以5 wt%的高重量百分比蚀刻TiAlC 36小时可制备出高度剥离的MXene材料。以较低重量百分比(0.6 - 2.5 wt%)蚀刻TiAlC会产生可观察到的副产物(AlF)。在长时间蚀刻或较高温度下会观察到MXene层因AlF富集而降解。室温蚀刻无法使TiAlC剥离,且重复蚀刻会使MXene材料变性。蚀刻过程中引入可控的超声处理可在最短蚀刻时间内制备出高度剥离的MXene,这可能是高质量MXene制备的一种有前景的替代方法。

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